首页> 美国卫生研究院文献>Molecular and Cellular Biology >Myc Inhibits p27-Induced Erythroid Differentiation of Leukemia Cells by Repressing Erythroid Master Genes without Reversing p27-Mediated Cell Cycle Arrest
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Myc Inhibits p27-Induced Erythroid Differentiation of Leukemia Cells by Repressing Erythroid Master Genes without Reversing p27-Mediated Cell Cycle Arrest

机译:Myc通过抑制类红细胞母体基因而不逆转p27介导的细胞周期阻滞抑制p27诱导的白血病细胞类红细胞分化

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摘要

Inhibition of differentiation has been proposed as an important mechanism for Myc-induced tumorigenesis, but the mechanisms involved are unclear. We have established a genetically defined differentiation model in human leukemia K562 cells by conditional expression of the cyclin-dependent kinase (Cdk) inhibitor p27 (inducible by Zn2+) and Myc (activatable by 4-hydroxy-tamoxifen). Induction of p27 resulted in erythroid differentiation, accompanied by Cdk inhibition and G1 arrest. Interestingly, activation of Myc inhibited p27-mediated erythroid differentiation without affecting p27-mediated proliferation arrest. Microarray-based gene expression indicated that, in the presence of p27, Myc blocked the upregulation of several erythroid-cell-specific genes, including NFE2, JUNB, and GATA1 (transcription factors with a pivotal role in erythropoiesis). Moreover, Myc also blocked the upregulation of Mad1, a transcriptional antagonist of Myc that is able to induce erythroid differentiation. Cotransfection experiments demonstrated that Myc-mediated inhibition of differentiation is partly dependent on the repression of Mad1 and GATA1. In conclusion, this model demonstrates that Myc-mediated inhibition of differentiation depends on the regulation of a specific gene program, whereas it is independent of p27-mediated cell cycle arrest. Our results support the hypothesis that differentiation inhibition is an important Myc tumorigenic mechanism that is independent of cell proliferation.
机译:已经提出抑制分化是Myc诱导的肿瘤发生的重要机制,但是涉及的机制尚不清楚。我们通过条件表达细胞周期蛋白依赖性激酶(Cdk)抑制剂p27(可被Zn 2 + 诱导)和Myc(可被4-羟基-磷酸化激活)建立遗传定义的人白血病K562细胞分化模型。他莫昔芬)。 p27的诱导导致红系分化,并伴有Cdk抑制和G1阻滞。有趣的是,Myc的激活抑制了p27介导的红系分化,而不影响p27介导的增殖停滞。基于微阵列的基因表达表明,在存在p27的情况下,Myc阻止了几种红细胞特异性基因的上调,包括NFE2,JUNB和GATA1(在红细胞生成中起关键作用的转录因子)。此外,Myc还阻止了能够诱导红系分化的Myc转录拮抗剂Mad1的上调。共转染实验表明,Myc介导的分化抑制部分取决于Mad1和GATA1的抑制。总之,该模型证明Myc介导的分化抑制取决于特定基因程序的调节,而与p27介导的细胞周期停滞无关。我们的结果支持以下假设:分化抑制是一种重要的Myc致瘤机制,与细胞增殖无关。

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